Crossref Citations
This article has been cited by the following publications. This list is generated based on data provided by
Crossref.
Dudkin, Elizabeth A
and
Gruberg, Edward R
2003.
Nucleus isthmi enhances calcium influx into optic nerve fiber terminals in Rana pipiens.
Brain Research,
Vol. 969,
Issue. 1-2,
p.
44.
Yu, C.-J
and
Debski, E.A
2003.
The effects of nicotinic and muscarinic receptor activation on patch-clamped cells in the optic tectum of rana pipiens.
Neuroscience,
Vol. 118,
Issue. 1,
p.
135.
Gutmaniene, Nijole
Svirskiene, Natasa
and
Svirskis, Gytis
2003.
Firing properties of frog tectal neurons in vitro.
Brain Research,
Vol. 981,
Issue. 1-2,
p.
213.
Kuras, Antanas
Baginskas, Armantas
and
Batuleviciene, Vaida
2004.
Suprathreshold excitation of frog tectal neurons by short spike trains of single retinal ganglion cell.
Experimental Brain Research,
Vol. 159,
Issue. 4,
p.
509.
Kuras, Antanas
Baginskas, Armantas
and
Batuleviciene, Vaida
2006.
Non-NMDA and NMDA receptors are involved in suprathreshold excitation of network of frog tectal neurons by a single retinal ganglion cell.
Neuroscience Research,
Vol. 54,
Issue. 4,
p.
328.
Kuras, Antanas
Baginskas, Armantas
Batuleviciene, Vaida
and
Lamanauskas, Nerijus
2007.
Single retinal changing contrast (third) detector elicits NMDA receptor response and higher activity level of frog tectum neuron network.
Experimental Brain Research,
Vol. 179,
Issue. 2,
p.
209.
Baginskas, Armantas
and
Kuras, Antanas
2008.
Single retinal ganglion cell evokes the activation of L-type Ca2+-mediated slow inward current in frog tectal pear-shaped neurons.
Neuroscience Research,
Vol. 60,
Issue. 4,
p.
412.
Baginskas, Armantas
and
Kuras, Antanas
2009.
L-Type Ca2+ current in frog tectal recurrent neurons determines the NMDA receptor activation on efferent neuron.
Experimental Brain Research,
Vol. 193,
Issue. 4,
p.
509.
Svirskis, Gytis
Svirskienė, Nataša
and
Gutmanienė, Nijolė
2009.
An eye-tectum preparation allowing routine whole-cell recordings of neuronal responses to visual stimuli in frog.
Journal of Neuroscience Methods,
Vol. 180,
Issue. 1,
p.
22.
Baginskas, Armantas
and
Kuras, Antanas
2011.
Muscarinic inhibition of recurrent glutamatergic excitation in frog tectum column prevents NMDA receptor activation on efferent neuron.
Experimental Brain Research,
Vol. 208,
Issue. 3,
p.
323.
Baginskas, Armantas
Kuraite, Vilija
and
Kuras, Antanas
2011.
Presynaptic nicotinic potentiation of a frog retinotectal transmission evoked by discharge of a single retina ganglion cell.
Neuroscience Research,
Vol. 70,
Issue. 4,
p.
391.
Baginskas, Armantas
Kuraite, Vilija
and
Kuras, Antanas
2012.
Phasic nicotinic potentiation of frog retinotectal transmission enhances intrinsic activity of tectum column.
Neuroscience Research,
Vol. 74,
Issue. 1,
p.
42.
Baginskas, Armantas
Kuraite, Vilija
and
Kuras, Antanas
2012.
Frog retinal ganglion cells projecting to the tectum layer F release acetylcholine as co-mediator.
Neuroscience Letters,
Vol. 522,
Issue. 2,
p.
145.
Baginskas, Armantas
Kuraite, Vilija
and
Kuras, Antanas
2013.
Phasic nicotinic potentiation of frog retinotectal transmission facilitates eliciting of higher activity level of the tectum column.
Neuroscience Letters,
Vol. 554,
Issue. ,
p.
1.
Baginskas, Armuntas
Kuraitė, Vilija
and
Kuras, Antanas
2015.
Nicotinic potentiation of frog retinotectal transmission in tectum layer F by α3β2, α4β2, α2β4, α6β2, or α7 acetylcholine receptor subtypes.
Medicina,
Vol. 51,
Issue. 2,
p.
117.
Gonçalves, R.G.J.
Vasques, J.F.
Trindade, P.
Serfaty, C.A.
Campello-Costa, P.
and
Faria-Melibeu, A.C.
2016.
Nicotine-induced plasticity in the retinocollicular pathway: Evidence for involvement of amyloid precursor protein.
Neuroscience,
Vol. 313,
Issue. ,
p.
1.